WO2024096096A1 - Couvercle de dissipation de chaleur insonorisé - Google Patents

Couvercle de dissipation de chaleur insonorisé Download PDF

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Publication number
WO2024096096A1
WO2024096096A1 PCT/JP2023/039596 JP2023039596W WO2024096096A1 WO 2024096096 A1 WO2024096096 A1 WO 2024096096A1 JP 2023039596 W JP2023039596 W JP 2023039596W WO 2024096096 A1 WO2024096096 A1 WO 2024096096A1
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WIPO (PCT)
Prior art keywords
heat
sound
absorbing
dissipating
reinforcing member
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PCT/JP2023/039596
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English (en)
Japanese (ja)
Inventor
俊哉 野中
幸治 富山
延欣 瀬戸
祐介 早崎
Original Assignee
住友理工株式会社
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Application filed by 住友理工株式会社 filed Critical 住友理工株式会社
Publication of WO2024096096A1 publication Critical patent/WO2024096096A1/fr

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    • GPHYSICS
    • G10MUSICAL INSTRUMENTS; ACOUSTICS
    • G10KSOUND-PRODUCING DEVICES; METHODS OR DEVICES FOR PROTECTING AGAINST, OR FOR DAMPING, NOISE OR OTHER ACOUSTIC WAVES IN GENERAL; ACOUSTICS NOT OTHERWISE PROVIDED FOR
    • G10K11/00Methods or devices for transmitting, conducting or directing sound in general; Methods or devices for protecting against, or for damping, noise or other acoustic waves in general
    • G10K11/16Methods or devices for protecting against, or for damping, noise or other acoustic waves in general

Definitions

  • This disclosure relates to a soundproof and heat-dissipating cover.
  • Patent Document 1 describes a soundproof cover that covers an object.
  • the soundproof cover is formed into a planar shape from sound-absorbing material and includes a sound-absorbing sheet that covers the surface of the object, and a reinforcing member that positions the sound-absorbing sheet relative to the object.
  • the reinforcing member positions the sound-absorbing sheet on the object with at least a portion of the sound-absorbing sheet exposed.
  • the part of the sound-absorbing sheet exposed from the reinforcing member may sag downward due to gravity, creating a gap between the object and the sound-absorbing sheet. This may cause the air layer formed in the gap between the object and the sound-absorbing sheet to trap heat in the object, reducing the object's heat dissipation ability.
  • This disclosure has been made in light of this background, and aims to provide a soundproofing and heat dissipation cover with improved heat dissipation properties.
  • a sound-insulating and heat-dissipating cover for covering an object A sound absorbing and heat dissipating sheet formed in a planar shape from a first sound absorbing material and having a covering surface that covers the surface of the object and a heat dissipating surface opposite to the covering surface; a reinforcing member formed of a material having a harder hardness than the first sound absorbing material and covering the sound absorbing and heat dissipating sheet from the heat dissipating surface side of the sound absorbing and heat dissipating sheet; Equipped with The sound absorbing and heat dissipating sheet further comprises: A pair of first attachment portions formed at positions near both ends in a first direction along the covering surface; a heat dissipation area formed between the pair of first mounting portions, The heat dissipation surface of the heat dissipation area of the sound absorbing and heat dissipating sheet is formed with a plurality of protrusions arranged side by side at intervals,
  • the multiple protrusions of the sound-absorbing and heat-dissipating sheet abut against the bridging portions of the reinforcing member, thereby supporting the multiple protrusions of the sound-absorbing and heat-dissipating sheet on the bridging portions of the reinforcing member. This prevents the sound-absorbing and heat-dissipating sheet from deforming into a convex shape in the direction from the covered surface toward the heat-dissipating surface.
  • the covered surface of the sound-absorbing and heat-dissipating sheet is prevented from bending and deforming away from the object, preventing the formation of a gap between the object and the covered surface of the sound-absorbing and heat-dissipating sheet. This allows heat generated from the object to be rapidly conducted to the sound-absorbing and heat-dissipating sheet, improving the heat dissipation properties of the sound-insulating and heat-dissipating cover.
  • FIG. 1 is a side view showing a state in which the soundproof heat dissipation cover of the first embodiment is attached to an object.
  • 1A is a top view of a soundproof heat dissipation cover according to a first embodiment of the present invention
  • FIG. 1B is a front view of the soundproof heat dissipation cover
  • FIG. 1A and 1B are diagrams showing the sound absorbing and heat dissipating sheet of the first embodiment, in which FIG. 1A and 1B are diagrams showing a reinforcing member according to a first embodiment, in which FIG. FIG. 3 is a partially enlarged front view showing a region R in FIG. 2 .
  • FIG. 3 is a partially enlarged cross-sectional view showing the state before a reinforcing member is attached to the sound-absorbing and heat-dissipating sheet of the first embodiment.
  • FIG. 3 is a partially enlarged cross-sectional view showing a state in which a reinforcing member is attached to the sound-absorbing and heat-dissipating sheet of the first embodiment.
  • FIG. 1 is a partially enlarged cross-sectional view showing a state in which the soundproof and heat-dissipating cover of the first embodiment is attached to an object.
  • 11 is a partially enlarged cross-sectional view showing the state before a reinforcing member is attached to the sound-absorbing and heat-dissipating sheet of embodiment 2.
  • FIG. 11 is a partially enlarged cross-sectional view showing a state in which a reinforcing member is attached to the sound-absorbing and heat-dissipating sheet of embodiment 2.
  • FIG. 11 is a partially enlarged cross-sectional view showing the state before a reinforcing member is attached to the sound-absorbing and heat-dissipating sheet of embodiment 3.
  • FIG. 11 is a partially enlarged cross-sectional view showing a state in which a soundproof and heat-dissipating cover of embodiment 3 is attached to an object.
  • FIG. 13 is a partially enlarged cross-sectional view showing a state in which a reinforcing member is attached to the sound-absorbing and heat-dissipating sheet of embodiment 4.
  • 10 is a partially enlarged front view showing a soundproof and heat-dissipating cover according to a fifth embodiment, illustrating a region corresponding to region R in FIG. 2 .
  • 13 is a partially enlarged front view showing a soundproof and heat-dissipating cover according to a sixth embodiment, illustrating a region corresponding to region R in FIG. 2 .
  • 13 is a partially enlarged front view showing a soundproof and heat-dissipating cover according to a modified example of the sixth embodiment, illustrating a region corresponding to region R in FIG. 2 .
  • the soundproof heat dissipation cover 1 has a function of covering an object 2 to suppress transmission of sound generated in the object 2 to the outside, and a function of dissipating heat from the object 2 to the outside.
  • the object 2 is, for example, a power source of a vehicle. Examples of the power source include a motor for driving the vehicle, an engine for driving the vehicle, etc.
  • the object 2 is a vehicle drive motor.
  • the drive motor in FIG. 1 has a cylindrical outer circumferential surface.
  • the outer circumferential surface of the drive motor is not limited to a cylindrical surface, and may be formed with appropriate projections and recesses.
  • the drive motor is positioned so that its rotation axis coincides with the left-right direction of the vehicle.
  • the left side of Figure 1 is the front of the vehicle, and the right side is the rear of the vehicle.
  • the front side of the drive motor is an area that can directly receive airflow when the vehicle is moving.
  • both the upper and lower side surfaces of the drive motor can also receive airflow that flows from the front to the rear when the vehicle is moving.
  • the rear side of the drive motor is an area that does not directly receive airflow when the vehicle is moving.
  • the underside of the drive motor is a surface that can directly receive the airflow caused by natural convection.
  • both the front and rear side surfaces of the drive motor can also receive the airflow flowing from below to above due to natural convection.
  • the top surface of the drive motor is an area that does not directly receive the airflow caused by natural convection.
  • At least one of the circumferential sides of the drive motor is capable of receiving airflow, whether the vehicle is moving or stopped.
  • the drive motor may also be positioned so that its rotation axis coincides with the front-to-rear direction of the vehicle.
  • the soundproof heat radiation cover 1 covers the surface of the object 2, and for example, as shown in FIG. 1, when the object 2 is a drive motor, it covers the outer circumferential surface of the drive motor.
  • the soundproof heat radiation cover 1 covers the entire outer circumferential surface of the object 2, but it may have some uncovered portions.
  • four soundproof heat radiation covers 1 cover the outer circumferential surface of the object 2.
  • the four soundproof heat radiation covers 1 cover the top, bottom, front, and rear surfaces of the object 2.
  • the number of soundproof heat radiation covers 1 may be one to three, or five or more.
  • the soundproof and heat-dissipating cover 1 comprises a sound-absorbing and heat-dissipating sheet 3 and a reinforcing member 4.
  • the sound-absorbing and heat-dissipating sheet 3 is formed into a planar shape from a first sound-absorbing material having sound-absorbing properties, and covers the surface of the object 2. Therefore, the sound-absorbing and heat-dissipating sheet 3 can provide a soundproofing effect.
  • the sound-absorbing and heat-dissipating sheet 3 may be formed in advance into a shape that corresponds to the surface shape of the object 2.
  • the sound-absorbing and heat-dissipating sheet 3 may also be formed into a planar shape from a deformable material, and attached to the surface of the object 2 while being deformed.
  • the sound-absorbing and heat-dissipating sheet 3 has heat dissipation properties in addition to sound-absorbing properties.
  • the sound-absorbing and heat-dissipating sheet 3 comprises a covering surface 10 that covers the surface of the object 2, and a heat-dissipating surface 11 on the opposite side to the covering surface 10.
  • the first sound absorbing material constituting the sound absorbing and heat dissipating sheet 3 is preferably made of a material with excellent sound absorbing performance, such as foamed resin.
  • foamed resin include urethane foam, acrylic foam, silicone foam, styrene foam, foamed olefin (foamed PP, foamed PE), foamed PVC, foamed EVA, and foamed PA.
  • the Asker C hardness of the foamed resin of the sound absorbing and heat dissipating sheet 3 is 1 to 60 degrees.
  • the sound absorbing and heat dissipating sheet 3 may be made of a non-foamed resin with sound absorbing performance, or may be made of a metal.
  • non-foamed resin examples include polyamide resin, olefin resin, styrene resin, urethane resin, silicone resin, acrylic resin, polyvinyl chloride resin, polyethylene resin, polyethylene terephthalate resin, polycarbonate resin, polypropylene resin, ABS resin, EVA resin, and carbon fiber plastic (FRP, CFRP).
  • metal examples include iron, aluminum, SUS, copper, and alloys thereof.
  • foamed resin which has excellent sound absorbing performance, is preferable.
  • the sound absorbing and heat dissipating sheet 3 is preferably formed of a foamed resin containing a thermally conductive material.
  • the thermally conductive material should be extended from the covering surface 10 of the sound absorbing and heat dissipating sheet 3 toward the heat dissipation surface 11.
  • the thermally conductive filler is arranged from the covering surface 10 of the sound absorbing and heat dissipating sheet 3 toward the heat dissipation surface 11.
  • the amount of thermally conductive material may be made to differ depending on the position of the sound absorbing and heat dissipating sheet 3. For example, since the rear surface of the vehicle is more difficult to cool than the front surface of the vehicle, it is preferable to make the amount of thermally conductive material filled in the rear surface of the vehicle greater than that of the front surface of the vehicle.
  • the amount of filling here means the amount of filling per unit area in the surface direction of the sound absorbing and heat dissipating sheet 3.
  • the thermally conductive material is a metal plate, it is preferable to insert mold it so that it extends from the covering surface 10 of the sound absorbing and heat dissipating sheet 3 toward the heat dissipation surface 11.
  • the reinforcing member 4 positions the sound-absorbing and heat-radiating sheet 3 relative to the object 2 while covering the sound-absorbing and heat-radiating sheet 3 from the heat-radiating surface 11 side.
  • the reinforcing member 4 is formed separately from the sound-absorbing and heat-radiating sheet 3 and is positioned on the heat-radiating surface 11 side of the sound-absorbing and heat-radiating sheet 3, so that the sound-absorbing and heat-radiating sheet 3 is sandwiched between the reinforcing member 4 and the object 2.
  • the reinforcing member 4 may be fixed to the object 2 by a bolt 5 as shown in FIG. 1, for example.
  • the sound-absorbing and heat-dissipating sheet 3 has a first insertion hole 12 through which the bolt 5 is inserted (see FIG. 3), and the reinforcing member 4 has a second insertion hole 20 through which the bolt 5 is inserted (see FIG. 4).
  • the method of fixing the reinforcing member 4 to the object 2 is not limited to bolt fastening, and may be, for example, a configuration in which the reinforcing member 4 is engaged with a locking claw provided on the object 2. When the reinforcing member 4 and the object 2 are not fastened with a bolt, the first insertion hole 12 and the second insertion hole 20 are omitted.
  • the reinforcing member 4 is made of a material that is harder than the sound-absorbing and heat-dissipating sheet 3.
  • the sound-absorbing and heat-dissipating sheet 3 is formed in a planar shape from, for example, foamed resin.
  • the foamed resin of the reinforcing member 4 has an Asker C hardness of 60 to 99 degrees. In this way, when the sound-absorbing and heat-dissipating sheet 3 is made of a first sound-absorbing material that does not have sufficient rigidity, the sound-absorbing and heat-dissipating sheet 3 alone has a low positioning effect on the target object 2. Even in such a case, the reinforcing member 4 can reliably position the sound-absorbing and heat-dissipating sheet 3 relative to the target object 2.
  • the reinforcing member 4 is formed from a material having a greater mass per unit volume (hereinafter referred to as "unit mass") than the sound-absorbing and heat-dissipating sheet 3. As described above, in order for the reinforcing member 4 to be able to exert its reinforcing function, the reinforcing member 4 is formed from a material having a greater unit mass than the sound-absorbing and heat-dissipating sheet 3.
  • the reinforcing member 4 may be formed from a second sound-absorbing material having sound-absorbing properties.
  • the second sound-absorbing material may be formed from a material with excellent sound-absorbing properties, such as a foamed resin.
  • the foamed resin applied to the reinforcing member 4 is different from the foamed resin applied to the sound-absorbing and heat-dissipating sheet 3.
  • examples of foamed resins applied to the reinforcing member 4 include urethane foam, acrylic foam, silicone foam, styrene foam, foamed olefin (foamed PP, foamed PE), foamed PVC, foamed EVA, and foamed PA.
  • the urethane foams are different types.
  • the reinforcing member 4 from the second sound-absorbing material, the soundproofing properties of the soundproofing and heat-dissipating cover 1 can be improved.
  • the reinforcing member 4 may be made of a material different from the second sound absorbing material, such as foamed rubber, non-foamed resin, or metal.
  • foamed rubber include foamed EPDM, foamed CR, foamed NBR/PVC, and foamed ACM.
  • non-foamed resin include polyamide resin, olefin resin, styrene resin, urethane resin, silicone resin, acrylic resin, polyvinyl chloride resin, polyethylene resin, polyethylene terephthalate resin, polycarbonate resin, polypropylene resin, ABS resin, EVA resin, and carbon fiber plastic (FRP, CFRP).
  • metal include iron, aluminum, SUS, copper, and alloys thereof.
  • the reinforcing member is made of rubber, resin, or metal that is harder than the foamed resin. However, foamed resin is preferable from the viewpoint of weight reduction.
  • the reinforcing member 4 is not arranged so as to cover the entire surface of the sound-absorbing and heat-dissipating sheet 3, but is arranged in a state in which at least a portion of the sound-absorbing and heat-dissipating sheet 3 is exposed.
  • the sound-absorbing and heat-dissipating sheet 3 has heat dissipation performance in addition to sound absorption performance. Therefore, by exposing the sound-absorbing and heat-dissipating sheet 3, the heat dissipation performance of the sound-absorbing and heat-dissipating sheet 3 can be effectively exhibited.
  • the reinforcing member 4 has a degree of flexibility that allows it to bend, it can be attached to the outer periphery of the object 2 while being deformed to fit the shape of the outer periphery of the object 2. Also, if the reinforcing member 4 is too hard to bend, it can be formed in advance to fit the shape of the outer periphery of the object 2. This allows the reinforcing member 4 to be easily attached to the outer periphery of the object 2.
  • the soundproof heat radiation cover 1 comprises a sound-absorbing and heat-radiating sheet 3 and a reinforcing member 4.
  • the sound-absorbing and heat-radiating sheet 3 and the reinforcing member 4 will be described in detail below.
  • the sound-absorbing and heat-radiating sheet 3 is composed of only one sheet.
  • the sound-absorbing and heat-radiating sheet 3 may also be composed of multiple divided bodies formed separately.
  • the soundproof and heat-radiating cover 1 is formed in a substantially rectangular shape in a plan view. However, the shape of the soundproof and heat-radiating cover 1 is not particularly limited and can be formed into any shape.
  • the sound absorbing and heat dissipating sheet 3 is formed in a substantially rectangular shape in a plan view in this embodiment, although it is not particularly limited.
  • the sound absorbing and heat dissipating sheet 3 is formed in a planar shape as a whole.
  • the sound absorbing and heat dissipating sheet 3 When attached to the object 2, the sound absorbing and heat dissipating sheet 3 has a pair of first mounting parts 13 formed at positions near both ends of the object 2 in the axial direction (one example of the first direction), and a heat dissipation area 14 formed between the pair of first mounting parts 13.
  • First insertion holes 12 penetrating the sound absorbing and heat dissipating sheet 3 are formed in the four corners of the sound absorbing and heat dissipating sheet 3, where the pair of first mounting parts 13 are formed. As described above, the first insertion holes 12 are configured to allow the bolts 5 to be inserted into the first insertion holes 12.
  • the covering surface 10 of the sound absorbing and heat dissipating sheet 3 covers and contacts a part of the surface of the object 2.
  • the heat dissipation surface 11 of the heat dissipation area 14 has a plurality of protrusions 15 formed to protrude outward.
  • the plurality of protrusions 15 are formed to extend in the planar direction of the sound absorbing and heat dissipating sheet 3.
  • the plurality of protrusions 15 are formed to extend linearly along the circumferential direction of the outer peripheral surface of the object 2 when the sound absorbing and heat dissipating sheet 3 is attached to the object 2.
  • the plurality of protrusions 15 are arranged at intervals in the axial direction of the object 2 on the heat dissipation surface 11 of the heat dissipation area 14. In this embodiment, the plurality of protrusions 15 are formed at equal intervals.
  • the shape of the plurality of protrusions 15 may be wavy in plan view.
  • the plurality of protrusions 15 may be formed to extend in the axial direction of the outer peripheral surface of the object 2, or may be formed to extend in a direction inclined with respect to the circumferential direction and axial direction of the outer peripheral surface of the object 2.
  • the thermally conductive material extend continuously from the covering surface 10 of the sound absorbing and heat dissipating sheet 3 to the tip of the ridges 15 in the direction normal to the surface of the sound absorbing and heat dissipating sheet 3. This allows the thermally conductive material to be continuously arranged in the range from the surface of the object 2 to the tip of the ridges 15, thereby achieving high heat dissipation performance.
  • a conductive filler is suitable as the thermally conductive material.
  • the thermally conductive material extends continuously in the extension direction of the ribs 15 at the tip side of the ribs 15. This allows the thermally conductive material to be continuously arranged in the range from one end side to the other end side of the extension direction of the ribs 15, thereby enabling high heat dissipation performance to be achieved in the surface direction as well.
  • the thermally conductive material can be metal foil such as copper, stainless steel, steel, aluminum, etc., metal film such as aluminum vapor deposition film, conductive filler, thermally conductive resin film, etc.
  • metal foil or metal film may be laminated with resin film.
  • the thermally conductive material may be provided in a specific region of the multiple ribs 15 or only in a specific rib 15, or may be arranged on the tip side or outer surface of the side of the ribs 15.
  • the sound absorbing and heat dissipating sheet 3 is made of foamed resin, it is preferable to make it as follows.
  • the heat dissipating surface 11 side of the sound absorbing and heat dissipating sheet 3 is in a closed cell state where the cells of the foamed resin are closed, and the covering surface 10 side is in an open cell state where the cells of the foamed resin are open.
  • the heat dissipating surface 11 side in a closed cell state, pressure loss when a fluid such as air flows can be suppressed, and heat dissipation performance can be improved.
  • the covering surface 10 side in an open cell state sound absorption performance can be improved. In other words, the above configuration can achieve good sound absorption performance and heat dissipation performance.
  • the reinforcing member 4 is composed of only one member. Note that the reinforcing member 4 may be composed of multiple divided bodies.
  • the reinforcing member 4 is formed in a generally rectangular shape in a plan view.
  • the reinforcing member 4 is formed to be generally the same size as the sound absorbing and heat dissipating sheet 3 in a plan view.
  • the reinforcing member 4 When attached to the object 2, the reinforcing member 4 has a pair of second mounting portions 21 formed at positions near both ends of the object 2 in the axial direction, and a bridging portion 22 that bridges the pair of second mounting portions 21 together.
  • the pair of second mounting portions 21 are configured to be attached to the pair of first mounting portions 13 of the sound absorbing and heat dissipating sheet 3, respectively.
  • the pair of second mounting portions 21 face the pair of first mounting portions 13 and have mounting surfaces 24 that are attached to the pair of first mounting portions 13 by known means such as adhesive, double-sided tape 23, etc.
  • the second mounting portions 21 are attached to the first mounting portions 13 by double-sided tape 23.
  • the width dimension of the pair of second mounting portions 21 is smaller than the width dimension of the pair of first mounting portions 13.
  • the pair of second mounting portions 21 are formed with second insertion holes 20 that penetrate the second mounting portions 21. As described above, the second insertion holes 20 are configured to allow the bolts 5 to be inserted therethrough.
  • the bridging portion 22 has an accommodation recess 25 formed in a concave shape in a direction away from the sound-absorbing and heat-dissipating sheet 3 on the surface facing the sound-absorbing and heat-dissipating sheet 3.
  • the accommodation recess 25 of the reinforcing member is configured to accommodate the heat dissipation area 14 of the sound-absorbing and heat-dissipating sheet 3.
  • the second mounting portion 21 and the bottom wall 26 of the accommodation recess 25 are connected by an inclined wall 27 that expands toward the second mounting portion 21.
  • the bottom wall 26 of the accommodation recess 25 has an inner surface 28 facing the sound-absorbing and heat-dissipating sheet 3 and an outer surface 29 opposite the inner surface 28.
  • the bridging portion 22 has an air vent 30 formed between the heat dissipating area 14 of the sound-absorbing and heat-dissipating sheet 3 and the bridging portion 22 on both sides that intersect with the circumferential direction of the object 2.
  • air can flow along the circumferential direction of the object 2, so air can flow into the reinforcing member 4 from the air vent 30 and can also flow out to the outside.
  • the multiple protrusions 15 of the sound-absorbing and heat-dissipating sheet 3 are exposed to the air vent 30.
  • the multiple protrusions 15 are formed to extend linearly, so the flow of air is not impeded. This improves the heat dissipation properties of the sound-insulating and heat-dissipating cover 1.
  • the multiple protrusions 15 can be configured to extend along the axial direction to prevent air flow from being impeded.
  • the bridging portion 22 has a plurality of through holes 31 penetrating the bridging portion 22.
  • the plurality of through holes 31 are formed as elongated slits extending in the direction in which the plurality of protrusions 15 of the sound absorbing and heat dissipating sheet 3 are arranged.
  • the plurality of through holes 31 are formed in a line with a space therebetween in the extension direction of the plurality of protrusions 15.
  • the extension direction of the plurality of through holes 31 and the extension direction of the plurality of protrusions 15 are perpendicular to each other.
  • the extension direction of the plurality of through holes 31 and the extension direction of the plurality of protrusions 15 may be configured to intersect at an angle.
  • the multiple through holes 31 are formed as elongated slits extending in the axial direction of the object 2, and are formed in a line at intervals along the circumferential direction of the outer surface 29 of the object 2.
  • the multiple through holes 31 have the same shape and size. Furthermore, the multiple through holes 31 are arranged in a line at equal intervals. However, the shapes and sizes of the multiple through holes 31 may be different from each other, and the intervals between the multiple through holes 31 may also be different from each other.
  • the protruding height dimension T1 of the protrusions 15 protruding from the heat-dissipating surface 11 of the sound-absorbing and heat-dissipating sheet 3 is set to be larger than the height dimension T2 between the mounting surface 24 of the second mounting portion 21 of the reinforcing member 4 and the inner surface 28 of the bridging portion 22.
  • the protruding height dimension T1 of the protrusions 15 protruding from the heat-dissipating surface 11 of the sound-absorbing and heat-dissipating sheet 3 may be set to be the same as the height dimension T2 between the mounting surface 24 of the second mounting portion 21 of the reinforcing member 4 and the inner surface 28 of the bridging portion 22.
  • the sound absorbing and heat dissipating sheet 3 is supported from below by the reinforcing member 4, but the relative positional relationship between the sound absorbing and heat dissipating sheet 3 and the reinforcing member 4 is not particularly limited.
  • the tip of the protrusion 15 of the sound-absorbing and heat-dissipating sheet 3 abuts against the inner surface 28 of the bridging portion 22 of the reinforcing member 4.
  • the protruding height dimension T1 of the protrusion 15 before the reinforcing member 4 is attached to the sound-absorbing and heat-dissipating sheet 3 is set to be larger than the height dimension T2 between the mounting surface 24 of the second mounting portion 21 of the reinforcing member 4 and the inner surface 28 of the bridging portion 22. Therefore, when the reinforcing member 4 is attached to the sound-absorbing and heat-dissipating sheet 3, the protrusion 15 is compressed by the bridging portion 22 of the reinforcing member in the protruding direction of the protrusion 15.
  • the multiple protrusions 15 of the sound-absorbing and heat-dissipating sheet 3 come into contact with the bridging portions 22 of the reinforcing member 4, so that the multiple protrusions 15 of the sound-absorbing and heat-dissipating sheet 3 are supported by the bridging portions 22 of the reinforcing member 4. This prevents the sound-absorbing and heat-dissipating sheet 3 from deforming into a convex shape in the direction from the covered surface 10 toward the heat-dissipating surface 11.
  • the covered surface 10 of the sound-absorbing and heat-dissipating sheet 3 is prevented from bending and deforming away from the object 2, so that the formation of a gap between the object 2 and the covered surface 10 of the sound-absorbing and heat-dissipating sheet 3 is prevented.
  • This allows heat generated from the object 2 to be rapidly conducted to the sound-absorbing and heat-dissipating sheet 3, improving the heat dissipation properties of the sound-insulating and heat-dissipating cover 1.
  • the multiple protrusions 15 are compressed by pressure from the reinforcing member 4, pressing the sound-absorbing and heat-dissipating sheet 3 against the object 2. This improves the adhesion between the sound-absorbing and heat-dissipating sheet 3 and the object 2. As a result, the heat dissipation properties of the soundproof and heat-dissipating cover 1 are further improved.
  • the protrusions 15 are compressed by the bridging portions 22 of the reinforcing member 4, so that at least a portion of the covering surface 10 of the sound absorbing and heat dissipating sheet 3 has a bulging portion 16 that bulges out on the side opposite the reinforcing member 4.
  • the entire covering surface 10 of the heat dissipating region 14 of the sound absorbing and heat dissipating sheet 3 is the bulging portion 16.
  • the bulging portion 16 includes the thermally conductive material described above.
  • the covering surface 10 of the sound absorbing and heat dissipating sheet 3 may be configured so that only a portion of it bulges, or the covering surface 10 of the sound absorbing and heat dissipating sheet 3 may not have a bulging portion 16.
  • the covering surface 10 of the sound absorbing and heat radiation sheet 3 covers the surface of the object. Then, the bulging portion 16 of the covering surface 10 of the sound absorbing and heat radiation sheet 3 is surely in contact with the object 2 and is compressed by the object 2. This improves the adhesion between the sound absorbing and heat radiation sheet 3 and the object 2, improving the heat radiation performance of the soundproof heat radiation cover 1.
  • this embodiment has been described taking as an example a state in which the soundproof heat radiation cover 1 is attached to the underside of the object 2, there is no limitation as to which part of the object 2 the soundproof heat radiation cover 1 is attached to.
  • the bulge 16 over the entire covering surface 10 of the heat dissipation area 14, the adhesion between the sound absorbing and heat dissipating sheet 3 and the object 2 is improved over the entire covering surface 10 of the heat dissipation area 14, thereby improving the heat dissipation properties of the soundproof and heat dissipating cover 1.
  • the heat generated by the object 2 can be quickly transferred to the sound-absorbing and heat-dissipating sheet 3, improving the heat dissipation properties of the soundproof and heat-dissipating cover 1.
  • the reinforcing member 42 of the soundproof heat dissipation cover 41 of this embodiment has an insertion recess 43 on the inner surface 28 of the bridging portion 22.
  • the insertion recess 43 is recessed and formed at a position facing the tip ends of the multiple protrusions 15 of the sound-absorbing and heat-dissipating sheet 3 in a state in which the reinforcing member 42 is attached to the sound-absorbing and heat-dissipating sheet 3.
  • the insertion recess 43 is formed to extend along the circumferential direction of the target object 2, similar to the multiple protrusions 15.
  • the opening of the insertion recess 43 is formed to be large enough to allow the tip ends of the protrusions 15 to fit therein.
  • the tip of the protrusion 15 is configured to fit into the fitting recess 43. This prevents the protrusion 15 from being deflected and deformed by gravity or the heat of the object 2. As a result, the formation of a gap between the protrusion 15 of the sound-absorbing and heat-dissipating sheet 3 and the bridging portion 22 of the reinforcing member 42 is prevented, improving the heat dissipation properties of the sound-insulating heat-dissipating cover 41.
  • a soundproof heat dissipation cover 51 of a third embodiment will be described with reference to Figures 11 and 12.
  • a first attachment portion 53 provided on a sound absorbing and heat dissipating sheet 52 of this embodiment is formed to protrude in the protruding direction of the ribs 15.
  • a protruding height dimension T3 of the first attachment portion 53 is set to be larger than a protruding height dimension T1 of the ribs 15.
  • a step is formed between the first attachment portion 53 and the heat dissipation area 14 in the protruding direction of the ribs 15.
  • the reinforcing member 54 in this embodiment is formed in a flat plate shape. There is no step between the pair of second mounting portions 55 and a portion of the inner surface 28 of the reinforcing member 54 that is different from the pair of second mounting portions 55.
  • the second mounting portion 55 of the reinforcing member 54 is attached to the first mounting portion 53 of the sound-absorbing and heat-dissipating sheet 52, a space is formed between the heat dissipation area 14 of the sound-absorbing and heat-dissipating sheet 52 and the bridging portion 56 of the reinforcing member 54 by the protruding height dimension T3 of the first mounting portion 53.
  • the heat dissipation area 14 of the sound-absorbing and heat-dissipating sheet 52 and the multiple ridges 15 are accommodated in this space.
  • the protruding height dimension T3 of the first mounting portion 53 can also be set smaller than the protruding height dimension T1 of the ridges 15. In this case, the multiple ridges 15 are accommodated in the space in a compressed state.
  • a soundproof heat radiation cover 61 of the fourth embodiment will be described with reference to Fig. 13.
  • a compression protrusion 63 is formed on the inner surface 28 of the bridging portion 22 of the reinforcing member 62, which protrudes toward the sound absorbing and heat radiation sheet 3 in a state in which the second mounting portion 21 of the reinforcing member 62 is attached to the first mounting portion 13 of the sound absorbing and heat radiation sheet 3.
  • the compression protrusions 63 may be formed on at least a portion of the inner surface 28 of the bridging portion 22. However, the entire inner surface 28 of the bridging portion 22 may be formed as the compression protrusions 63 by having the entire inner surface 28 of the bridging portion 22 protrude toward the sound-absorbing and heat-dissipating sheet 3.
  • the compression protrusions 63 compress the multiple protrusions 15 of the sound-absorbing and heat-dissipating sheet 3, further improving the heat dissipation properties of the soundproof and heat-dissipating cover 61.
  • the bridging portions 22 compress the multiple protrusions 15, forming bulges 16 on the covering surface 10 of the sound-absorbing and heat-dissipating sheet 3. Furthermore, the compression protrusions 63 compress the protrusions 15, forming additional bulges 64 on the covering surface 10 of the sound-absorbing and heat-dissipating sheet 3 that bulge further from the bulges 16. The additional bulges 64 are formed at positions that overlap with the compression protrusions 63 of the bridging portions 22 in the protruding direction of the protrusions 15.
  • the portion where the additional bulge 64 is formed is strongly compressed by the object 2. This prevents gaps from being formed between the sound-absorbing and heat-dissipating sheet 3 and the object, further improving the heat dissipation properties of the soundproof heat dissipation cover 61. This is particularly effective when the object 2 has parts that become locally hot.
  • the soundproof heat dissipation cover 71 of the fifth embodiment will be described with reference to Fig. 14.
  • the bridging portion 22 of this embodiment has a plurality of through holes 72 with a circular inner shape, which are arranged at intervals along the direction in which the plurality of protrusions 15 extend and are also arranged at intervals along the direction in which the plurality of protrusions 15 are arranged. A part of the protrusions 15 is exposed from each through hole 72.
  • the portion of the bridging portion 22 where the through hole 72 is not formed abuts against the tips of the multiple protrusions 15. This prevents the sound absorbing and heat dissipating sheet 3 from deforming so as to move away from the surface of the object 2. As a result, the formation of gaps between the sound absorbing and heat dissipating sheet 3 and the object 2 is prevented, improving the heat dissipation properties of the soundproof and heat dissipating cover 71.
  • the arrangement of the multiple through holes 72 may be along only one of the directions in which the ridges 15 extend and the directions in which the ridges 15 are arranged, and not along the other, or may be arranged randomly, not along either the direction in which the ridges 15 extend or the directions in which the ridges 15 are arranged.
  • a soundproof heat dissipation cover 81 according to a sixth embodiment will be described with reference to Fig. 15.
  • a plurality of through holes 72 each having a circular inner shape are arranged in a staggered pattern.
  • the portions where the staggered through holes 72 are not formed have elongated band-like sections that cross diagonally in both the direction in which the ridges 15 extend and the direction in which the ridges 15 are lined up. This allows the ridges 15 to be held evenly and without bias, further preventing the sound-absorbing and heat-dissipating sheet 3 from deforming in a direction away from the object 2. As a result, the heat dissipation properties of the sound-insulating and heat-dissipating cover 81 can be improved.
  • (Modification of the sixth embodiment) 16 illustrates a modified example of the sixth embodiment.
  • the inner shape of the plurality of through holes 82a in this embodiment is formed to be hexagonal.
  • the inner shape of the plurality of through holes 82a is not limited to a circular or hexagonal shape, but may be a polygonal shape such as a triangular, rectangular, or pentagonal shape, or may be an elliptical shape, and any shape can be appropriately selected.
  • the sizes of the multiple through holes 82a may be different from each other.
  • the heat dissipation properties of the soundproof heat dissipation cover 81 can be improved by making the size of the through holes 82a corresponding to the portion that is prone to high temperatures larger than the other portions.

Landscapes

  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Acoustics & Sound (AREA)
  • Multimedia (AREA)
  • Vehicle Interior And Exterior Ornaments, Soundproofing, And Insulation (AREA)
  • Soundproofing, Sound Blocking, And Sound Damping (AREA)

Abstract

La présente invention concerne un couvercle de dissipation de chaleur insonorisé (1) qui doit recouvrir un objet (2), lequel couvercle de dissipation de chaleur insonorisé comprend : une feuille de dissipation de chaleur insonorisée (3) qui a une surface de recouvrement (10) qui recouvre la surface de l'objet (2) et une surface de dissipation de chaleur (11) qui est sur le côté opposé à la surface de recouvrement (10); et un élément de renforcement (4) qui recouvre la feuille de dissipation de chaleur insonorisée (3) à partir du côté surface de dissipation de chaleur (11) de la feuille de dissipation de chaleur insonorisée. La feuille de dissipation de chaleur insonorisée (3) comprend également une paire de premières parties de fixation (13) et une région de dissipation de chaleur (14) qui est formée entre la paire de premières parties de fixation (13). Une pluralité de crêtes (15) qui sont alignées à intervalles sont formées sur la surface de dissipation de chaleur (11) dans la région de dissipation de chaleur (14) de la feuille de dissipation de chaleur insonorisée (3). L'élément de renforcement (4) comprend : une paire de secondes parties de fixation (21) qui sont respectivement fixées à la paire de premières parties de fixation (13); et une partie pont (22) qui relie la paire de secondes parties de fixation (21) et a une pluralité de trous traversants (31). La pluralité de crêtes (15) sur la feuille de dissipation de chaleur insonorisée (3) viennent en butée contre la partie pont (22) de l'élément de renforcement (42).
PCT/JP2023/039596 2022-11-04 2023-11-02 Couvercle de dissipation de chaleur insonorisé WO2024096096A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2022-177359 2022-11-04
JP2022177359A JP2024067353A (ja) 2022-11-04 2022-11-04 防音放熱カバー

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WO2024096096A1 true WO2024096096A1 (fr) 2024-05-10

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JP (1) JP2024067353A (fr)
WO (1) WO2024096096A1 (fr)

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS51157742U (fr) * 1975-06-10 1976-12-15
JPH1039875A (ja) * 1996-07-19 1998-02-13 Mitsubishi Heavy Ind Ltd 遮音材構造および空気調和機の防音構造
US20070169992A1 (en) * 2006-01-25 2007-07-26 Siemens Power Generation, Inc. Acoustic resonator with impingement cooling tubes
JP2017146340A (ja) * 2016-02-15 2017-08-24 株式会社オートネットワーク技術研究所 吸音板、吸音板付電線、吸音板の製造方法
WO2022124113A1 (fr) * 2020-12-07 2022-06-16 住友理工株式会社 Couvercle d'insonorisation

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS51157742U (fr) * 1975-06-10 1976-12-15
JPH1039875A (ja) * 1996-07-19 1998-02-13 Mitsubishi Heavy Ind Ltd 遮音材構造および空気調和機の防音構造
US20070169992A1 (en) * 2006-01-25 2007-07-26 Siemens Power Generation, Inc. Acoustic resonator with impingement cooling tubes
JP2017146340A (ja) * 2016-02-15 2017-08-24 株式会社オートネットワーク技術研究所 吸音板、吸音板付電線、吸音板の製造方法
WO2022124113A1 (fr) * 2020-12-07 2022-06-16 住友理工株式会社 Couvercle d'insonorisation

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